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Toward Automated Fact-Checking: Detecting Check-worthy Factual Claims by Claim Buster

机译:朝着自动化的事实检查:检测由索赔巴斯特的计量实物索赔

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摘要

This paper introduces how ClaimBuster, a fact-checking platform, uses natural language processing and supervised learning to detect important factual claims in political discourses. The claim spotting model is built using a human-labeled dataset of check-worthy factual claims from the U.S. general election debate transcripts. The paper explains the architecture and the components of the system and the evaluation of the model. It presents a case study of how ClaimBuster live covers the 2016 U.S. presidential election debates and monitors social media and Australian Hansard for factual claims. It also describes the current status and the long-term goals of ClaimBuster as we keep developing and expanding it.
机译:本文介绍了一个事实上检查平台,使用自然语言处理和监督学习来检测政治致密的重要事实索赔。 索赔模式模型是使用美国常任选举辩论成绩单的人工标签的实际索赔的人为标签数据集建造。 本文解释了系统的架构和组件和模型的评估。 它提出了一个案例研究,案例拨票现场涵盖2016年美国总统选举辩论,并监测社会媒体和澳大利亚Hansard的事实索赔。 它还介绍了当前状态和索赔风格的长期目标,因为我们继续开发和扩展它。

著录项

  • 来源
    《SIGKDD explorations》 |2017年第cdarom期|共10页
  • 作者单位

    Department of Computer and Information Science University of Mississippi;

    Department of Computer Science and Engineering University of Texas at Arlington;

    Department of Computer Science and Engineering University of Texas at Arlington;

    Department of Communication University of Texas at Arlington;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TP274.2;
  • 关键词

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